WO2024008065A1 - Procédé et appareil utilisés dans un nœud de communication sans fil - Google Patents

Procédé et appareil utilisés dans un nœud de communication sans fil Download PDF

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Publication number
WO2024008065A1
WO2024008065A1 PCT/CN2023/105675 CN2023105675W WO2024008065A1 WO 2024008065 A1 WO2024008065 A1 WO 2024008065A1 CN 2023105675 W CN2023105675 W CN 2023105675W WO 2024008065 A1 WO2024008065 A1 WO 2024008065A1
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Prior art keywords
csi
csi reporting
function
reporting configuration
type
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PCT/CN2023/105675
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English (en)
Chinese (zh)
Inventor
吴克颖
张晓博
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上海朗帛通信技术有限公司
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Publication of WO2024008065A1 publication Critical patent/WO2024008065A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows

Definitions

  • This application relates to transmission methods and devices in wireless communication systems, and in particular to solutions and devices related to CSI (Channel Status Information) in wireless communication systems.
  • CSI Channel Status Information
  • the UE (User Equipment) report may include at least one of a variety of auxiliary information, such as CSI, beam management-related auxiliary information, positioning-related auxiliary information, etc.
  • CSI includes CRI (CSI-RS Resource Indicator, Channel State Information Reference Signal Resource Indicator), RI (Rank Indicator, Rank Indicator), PMI (Precoding Matrix Indicator, Precoding Indicator) or CQI (Channel quality indicator, Channel Quality Indicator) at least one of them.
  • CRI CSI-RS Resource Indicator, Channel State Information Reference Signal Resource Indicator
  • RI Rank Indicator, Rank Indicator
  • PMI Precoding Matrix Indicator, Precoding Indicator
  • CQI Channel quality indicator, Channel Quality Indicator
  • the network equipment selects appropriate transmission parameters for the UE based on the UE's report, such as the resident cell, MCS (Modulation and Coding Scheme, modulation and coding scheme), TPMI (Transmitted Precoding Matrix Indicator, sending precoding matrix indication), TCI (Transmission Configuration Indication) , send configuration instructions) and other parameters.
  • UE reporting can be used to optimize network parameters, such as better cell coverage, switching base stations based on UE location, etc.
  • the priority of the CSI report is defined, and the priority is used to determine whether to allocate CPU (CSI Processing Unit, CSI processing unit) resources to the corresponding CSI report for update, or Whether to give up updating the corresponding CSI report.
  • CPU CSI Processing Unit, CSI processing unit
  • this application discloses a solution. It should be noted that although a large number of embodiments of this application are developed for AI/ML, this application is also applicable to other solutions, such as traditional codebook-based solutions. In addition, adopting unified solutions for different scenarios (including but not limited to AI/ML-based solutions and codebook-based solutions) can also help reduce hardware complexity and cost. In the case of no conflict, the embodiments and features in the embodiments of the first node of the present application can be applied to the second node, and vice versa. The embodiments of the present application and the features in the embodiments can be combined with each other arbitrarily without conflict.
  • This application discloses a method used in a first node of wireless communication, which is characterized by including:
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value sub-set. Set; the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the first CSI report does not occupy the first type of processing unit before the first symbol ; The number of the first type of processing units occupied by the first CSI report is related to whether the first CSI report configuration is used to generate the first function.
  • the problems to be solved by this application include: how to reasonably allocate processing units for CSI reporting.
  • the number of the first type of processing units occupied by the first CSI report is related to whether the first CSI report configuration is used to generate the first function, which solves this problem.
  • the benefits of the above method include: flexible and reasonable allocation of processing units according to the requirements of the first CSI report; While meeting the processing power requirements for CSI reporting, it avoids waste of processing power.
  • the first CSI reporting configuration includes a third higher layer parameter, and the third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the First function.
  • the first CSI reporting configuration includes a fourth higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • the present application is characterized in that when the first CSI reporting configuration is used to generate the first function, the number of the first type of processing units occupied by the first CSI reporting and It is related to the first index, and the first index is associated with the first function.
  • the characteristics of the above method include: the number of the first type of processing units occupied by the first CSI report is related to the first function, such as but not limited to the wireless channel to which the first function is applicable. characteristics.
  • the benefits of the above method include: rationally allocating processing units according to the requirements of the first function, which avoids waste of processing capabilities while meeting the processing capability requirements of CSI reporting.
  • the first CSI reporting configuration set includes a second CSI reporting configuration, and the second CSI reporting configuration is used to determine the second CSI reporting; the first pre-compression CSI is used as the input of the first function. to generate the first compressed CSI.
  • the first type of processing unit when the first CSI reporting configuration is not used to generate the first function, the first type of processing unit is a second type of processing unit; when the first type of processing unit When the CSI reporting configuration is used to generate the first function, the first type of processing unit is a third type of processing unit.
  • the characteristics of the above method include: providing different processing units for CSI reports with different processing power requirements, optimizing the system design and avoiding waste of processing power.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting occupies a fourth type of processing unit starting from the second symbol.
  • the characteristics of the above method include: configuring two types of processing units to provide different processing capabilities respectively, optimizing the system design and avoiding waste of processing capabilities.
  • the first node is user equipment.
  • the first node is a relay node.
  • This application discloses a method used in a second node of wireless communication, which is characterized by including:
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value sub-set. Set; the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the target receiver of the first CSI report configuration updates the first CSI report ; The first CSI report does not occupy the first type of processing unit before the first symbol; the number of the first type of processing unit occupied by the first CSI report and whether the first CSI report configuration is used to generate related to the first function.
  • the first CSI reporting configuration includes a third higher layer parameter, and the third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the First function.
  • the first CSI reporting configuration includes a fourth higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • the present application is characterized in that when the first CSI reporting configuration is used to generate the first function, the number of the first type of processing units occupied by the first CSI reporting and It is related to the first index, and the first index is associated with the first function.
  • the first CSI reporting configuration set includes a second CSI reporting configuration, and the second CSI reporting configuration is used to determine the second CSI reporting; the first pre-compression CSI is used as the input of the first function. to generate the first compressed CSI.
  • the first type of processing unit when the first CSI reporting configuration is not used to generate the first function, the The first type of processing unit is a second type of processing unit; when the first CSI reporting configuration is used to generate the first function, the first type of processing unit is a third type of processing unit.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting occupies a fourth type of processing unit starting from the second symbol.
  • the second node is a base station.
  • the second node is user equipment.
  • the second node is a relay node.
  • This application discloses a first node device used for wireless communication, which is characterized in that it includes:
  • the first receiver receives a first CSI reporting configuration, where the first CSI reporting configuration is used to determine the first CSI reporting;
  • the first processor updates the first CSI report
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value sub-set. Set; the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the first CSI report does not occupy the first type of processing unit before the first symbol ; The number of the first type of processing units occupied by the first CSI report is related to whether the first CSI report configuration is used to generate the first function.
  • This application discloses a second node device used for wireless communication, which is characterized in that it includes:
  • the first transmitter sends a first CSI reporting configuration, where the first CSI reporting configuration is used to determine the first CSI reporting;
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value sub-set. Set; the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the target receiver of the first CSI report configuration updates the first CSI report ; The first CSI report does not occupy the first type of processing unit before the first symbol; the number of the first type of processing unit occupied by the first CSI report and whether the first CSI report configuration is used to generate related to the first function.
  • this application has the following advantages:
  • Different processing units are configured to meet different processing capacity requirements, optimizing the system design.
  • Figure 1 shows a first CSI reporting configuration and a flow chart of the first CSI reporting according to an embodiment of the present application
  • Figure 2 shows a schematic diagram of a network architecture according to an embodiment of the present application
  • Figure 3 shows a schematic diagram of an embodiment of a wireless protocol architecture of a user plane and a control plane according to an embodiment of the present application
  • Figure 4 shows a schematic diagram of a first communication device and a second communication device according to an embodiment of the present application
  • Figure 5 shows a flow chart of transmission according to an embodiment of the present application
  • Figure 6 shows a schematic diagram of a processing system based on artificial intelligence or machine learning according to an embodiment of the present application
  • Figure 7 shows a schematic diagram in which the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application
  • Figure 8 shows a schematic diagram in which the first CSI reporting configuration is not used to generate the first function according to an embodiment of the present application
  • Figure 9 shows a schematic diagram related to the number of first-type processing units occupied by the first CSI report and whether the first CSI report configuration is used to generate the first function according to an embodiment of the present application;
  • Figure 10 shows a schematic diagram in which a third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application
  • Figure 11 shows a schematic diagram of whether the first CSI reporting configuration includes a fourth higher layer parameter used to determine whether the first CSI reporting configuration is used to generate a first function according to an embodiment of the present application;
  • Figure 12 shows a schematic diagram illustrating the relationship between the number of first-type processing units occupied by the first CSI report and the first index when the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application;
  • Figure 13 shows a schematic diagram of the first function, the first compressed CSI and the first pre-compressed CSI according to an embodiment of the present application
  • Figure 14 shows a schematic diagram of a second function according to an embodiment of the present application.
  • Figure 15 shows a schematic diagram of the relationship between the first pre-compression CSI, the first compressed CSI, the first function and the second function according to an embodiment of the present application
  • Figure 16 shows that when the first CSI reporting configuration is not used to generate the first function, the first type of processing unit is a second type of processing unit according to an embodiment of the present application; when the first CSI reporting configuration is used to generate the first function When generating the first function, the first type of processing unit is a schematic diagram of the third type of processing unit;
  • Figure 17 shows a schematic diagram in which the first CSI report occupies the fourth type of processing unit starting from the second symbol when the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application;
  • Figure 18 shows a structural block diagram of a processing device used in a first node device according to an embodiment of the present application
  • Figure 19 shows a structural block diagram of a processing device used in a second node device according to an embodiment of the present application.
  • Embodiment 1 illustrates a first CSI reporting configuration and a flow chart of the first CSI reporting according to an embodiment of the present application, as shown in FIG. 1 .
  • each block represents a step.
  • the order of the steps in the box does not imply a specific temporal relationship between the steps.
  • the first node in this application receives the first CSI reporting configuration in step 101, and the first CSI reporting configuration is used to determine the first CSI reporting; and updates the first CSI reporting configuration in step 102.
  • a CSI report is included in the first CSI reporting configuration.
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value sub-set.
  • the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the first CSI report does not occupy the first type of processing unit before the first symbol ;
  • the number of the first type of processing units occupied by the first CSI report is related to whether the first CSI report configuration is used to generate the first function.
  • the CSI refers to: Channel State Information.
  • the CSI includes channel information.
  • the CSI includes a channel matrix.
  • the CSI includes information of a channel matrix.
  • the CSI includes amplitude and phase information of elements in the channel matrix.
  • the CSI includes an eigenvector.
  • the CSI includes information of an eigenvector.
  • the CSI includes amplitude and phase information of elements in the feature vector.
  • the feature vector includes a feature vector of a channel matrix.
  • the feature vector includes a feature vector of a channel covariance matrix.
  • the matrix includes vectors.
  • the first CSI reporting configuration is carried by higher layer signaling.
  • the first CSI reporting configuration is carried by RRC (Radio Resource Control, Radio Resource Control) signaling.
  • RRC Radio Resource Control, Radio Resource Control
  • the first CSI reporting configuration is carried by an IE (Information Element).
  • the first CSI reporting configuration is an IE.
  • the first CSI reporting configuration is an IE, and the name of the first CSI reporting configuration includes "CSI-ReportConfig".
  • the first CSI reporting configuration includes information in all or part of the fields in a CSI-ReportConfig IE.
  • the first CSI reporting configuration is a CSI-ReportConfig IE.
  • the first CSI reporting configuration is periodic.
  • the first CSI reporting configuration is semi-persistent.
  • the first CSI reporting configuration is aperiodic.
  • the first CSI reporting configuration is identified by a CSI-ReportConfigId.
  • the first CSI report is a CSI report configured for the first CSI report.
  • the first CSI report is generated according to the first CSI report configuration.
  • the first higher layer parameter includes information in at least one domain of the first CSI reporting configuration.
  • the first higher layer parameter is used to determine the CSI report quantity (report quantity) of the first CSI reporting configuration.
  • the first higher layer parameter indicates the CSI reporting amount of the first CSI reporting configuration.
  • the first higher layer parameter indicates whether the first node is configured to report the CSI reporting amount for the first CSI reporting; if the first higher layer parameter indicates that the first node is configured for the first CSI reporting A CSI reporting configuration reports a CSI reporting amount, and the first higher layer parameter indicates which CSI reporting amount is reported by the first node for the first CSI reporting configuration.
  • the name of the first higher-level parameter includes "reportQuantity”.
  • the first higher-level parameter is the higher-level parameter "reportQuantity”.
  • the first parameter value is equal to "none".
  • the first subset of candidate parameter values includes at least one candidate parameter value.
  • one candidate parameter value included in the first subset of candidate parameter values is "none".
  • the first subset of candidate parameter values includes only one candidate parameter value.
  • the first candidate parameter value subset includes only one candidate parameter value, and the one candidate parameter value included in the first candidate parameter value subset is “none”.
  • the first parameter value is equal to "none”
  • the first candidate parameter value subset is composed of the parameter value "none”.
  • the first subset of candidate parameter values includes multiple candidate parameter values.
  • the first subset of candidate parameter values includes a plurality of candidate parameter values, and one candidate parameter value among the plurality of candidate parameter values is "none".
  • the first subset of candidate parameter values includes at least one candidate parameter value different from “none”.
  • the candidate values of the first higher-level parameter include the first subset of candidate parameter values.
  • the candidate values of the first higher-level parameter include at least one parameter value that does not belong to the first subset of candidate parameter values.
  • the first subset of candidate parameter values does not need to be configured.
  • the first subset of candidate parameter values does not require higher layer signaling configuration or physical layer signaling configuration.
  • the first subset of candidate parameter values is default.
  • the first subset of candidate parameter values is predefined.
  • the first subset of candidate parameter values is configurable.
  • the first subset of candidate parameter values is configured by higher layer signaling.
  • the first node does not report any CSI reporting amount for the first CSI reporting configuration.
  • the first node when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the first node does not configure the first CSI reporting Report any CSI reporting volume.
  • the first candidate parameter value subset includes a first candidate parameter value; when the first parameter value is equal to the first candidate parameter value, the first node reports the first CSI Configure reporting of at least one CSI reporting amount.
  • the first CSI report does not include any report of the CSI reporting amount.
  • the CSI reported amount includes compressed CSI, CQI (Channel Quality Indicator), PMI (Precoding Matrix Indicator), CRI (CSI-RS Resource Indicator), LI (Layer Indicator), RI (Rank Indicator) , SSBRI (SS/PBCH Block Resource Indicator), L1-RSRP (Layer 1 Reference Signal received power), and L1-SINR (Signal-to-Interference and Noise Ratio).
  • CQI Channel Quality Indicator
  • PMI Precoding Matrix Indicator
  • CRI CSI-RS Resource Indicator
  • LI Layer Indicator
  • RI Rank Indicator
  • SSBRI SS/PBCH Block Resource Indicator
  • L1-RSRP Layer 1 Reference Signal received power
  • L1-SINR Signal-to-Interference and Noise Ratio
  • the CSI reporting amount further includes at least one of capability index or capability set index.
  • the compressed CSI includes at least one of a compressed channel matrix or a compressed feature vector.
  • the compressed CSI includes compressed PMI, compressed channel matrix or compressed feature vector. one or more.
  • the compressed CSI includes compressed PMI, compressed channel matrix, compressed feature vector, compressed channel matrix information, compressed channel covariance matrix, or compressed channel covariance matrix.
  • compressed PMI compressed PMI
  • compressed channel matrix compressed feature vector
  • compressed channel matrix information compressed channel covariance matrix
  • compressed channel covariance matrix compressed channel covariance matrix
  • compressed channel covariance matrix One or more of the variance matrix information.
  • the first node is not configured to report any first type of CSI reporting amount for the first CSI reporting configuration.
  • the first node when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the first node does not configure the first CSI reporting Report any first-category CSI reporting volume.
  • the first candidate parameter value subset includes a first candidate parameter value; when the first parameter value is equal to the first candidate parameter value, the first node reports the first CSI Configure reporting of at least one type 1 CSI reporting quantity.
  • the first CSI report does not include any report of the first type of CSI reporting amount.
  • the first type of CSI reporting amount includes compressed CSI, CQI, PMI, CRI, LI, RI, SSBRI, L1-RSRP, and L1-SINR.
  • the first type of CSI reporting amount also includes at least one of capability index or capability set index.
  • the first node when the first parameter value is equal to any candidate parameter value among P1 candidate parameter values, the first node is configured to report the second type of CSI reporting amount for the first CSI reporting; P1 is positive Integer; any candidate parameter value among the P1 candidate parameter values belongs to the first candidate parameter value subset, and at least one candidate parameter value in the first candidate parameter value subset does not belong to the P1 candidate parameter value value.
  • the The first node when the value of the first higher-level parameter is set to any candidate parameter value in the first candidate parameter value subset that does not belong to the P1 candidate parameter values, the The first node is not configured to report the second type of CSI reporting amount for the first CSI reporting configuration.
  • the first CSI reporting configuration is used to generate the First function.
  • the first subset of candidate parameter values includes the P1 candidate parameter values and the parameter value “none”.
  • P1 is equal to 1.
  • P1 is greater than 1.
  • the first node when the first CSI reporting configuration is used to generate the first function, the first node reports the second type of CSI reporting amount for the first CSI reporting configuration.
  • the first CSI reporting when the first CSI reporting configuration is used to generate the first function, includes reporting of the second type of CSI reporting amount.
  • the first node does not report any first type of CSI reporting amount for the first CSI reporting configuration; when the first CSI reporting configuration is used to generate the first function, the first node A node is configured to report a second type of CSI reporting amount for the first CSI reporting configuration.
  • the second type of CSI reporting amount is used to determine the first function.
  • the second type of CSI reporting amount includes a trained model, and the trained model is used to construct the first function.
  • the second type of CSI reporting amount includes parameter values used to describe a trained model, and the trained model is used to construct the first function.
  • the second higher layer parameter includes information in at least one domain of the first CSI reporting configuration.
  • the name of the second higher-level parameter includes "resourcesForChannelMeasurement”.
  • the second higher-level parameter is a higher-level parameter "resourcesForChannelMeasurement”.
  • the second higher layer parameter indicates the first RS resource group.
  • the second higher layer parameter indicates that the first RS resource group is used for channel measurement.
  • the first RS resource group is used by the first node for channel measurement.
  • measurements on the first RS resource group are used to update the first CSI report.
  • the first node obtains channel measurements for updating the first CSI report based on the first RS resource group.
  • the first node obtains channel measurements for updating the first CSI report based only on the first RS resource group.
  • the measurement for an RS resource group includes: for each RS resource in the one RS resource group Measurement of transmitted RS signal.
  • the measurement for one RS resource group includes: the measurement for the RS signal transmitted in at least one RS resource in the one RS resource group.
  • the first RS resource group includes at least one RS resource.
  • the first RS resource group includes a CSI-RS (Channel State Information-Reference Signal, Channel State Information Reference Signal) resource set.
  • CSI-RS Channel State Information-Reference Signal, Channel State Information Reference Signal
  • the first RS resource group is a CSI-RS resource set
  • the first RS resource group is an NZP (Non-Zero-Power, non-zero power) CSI-RS resource set.
  • NZP Non-Zero-Power, non-zero power
  • the first RS resource group is identified by an NZP-CSI-RS-ResourceSetId.
  • the first RS resource group is identified by a CSI-SSB-ResourceSetId.
  • the first RS resource group includes only one RS resource.
  • the first RS resource group includes multiple RS resources.
  • the RS resources in the first RS resource group include CSI-RS resources.
  • the RS resources in the first RS resource group include SS (Synchronisation Signal)/PBCH (Physical Croadcast Channel) Block resources.
  • SS Synchronisation Signal
  • PBCH Physical Croadcast Channel
  • any RS resource in the first RS resource group is a CSI-RS resource.
  • any RS resource in the first RS resource group is identified by an NZP-CSI-RS-ResourceId.
  • any RS resource in the first RS resource group is an SS/PBCH block resource.
  • any RS resource in the first RS resource group is identified by an SSB-Index.
  • any RS resource in the first RS resource group is a CSI-RS resource or SS/PBCH block resource.
  • any RS resource in the first RS resource group includes at least one RS port.
  • the RS port includes a CSI-RS port.
  • the RS port includes an antenna port.
  • the second higher layer parameter indicates M RS resource groups, M is a positive integer greater than 1, and the first RS resource group is one of the M RS resource groups; the first The information block indicates the first RS resource group from the M RS resource groups.
  • the first information block is carried by an IE.
  • the name of the IE carrying the first information block includes "CSI-AperiodicTriggerStateList”.
  • the first CSI reporting configuration and the first information block are carried by different IEs respectively.
  • the first information block indicates the CSI triggering state corresponding to the first CSI reporting configuration.
  • any RS resource group among the M RS resource groups includes at least one RS resource
  • any RS resource in any RS resource group among the M RS resource groups is a CSI-RS resources or SS/PBCH block resources.
  • any RS resource group among the M RS resource groups is identified by an NZP-CSI-RS-ResourceSetId or CSI-SSB-ResourceSetId.
  • the first higher layer parameter and the second higher layer parameter are respectively carried by different domains of the first CSI reporting configuration.
  • the meaning of the sentence that the first CSI reporting configuration is used to determine the first CSI reporting includes: the first CSI reporting configuration is used to determine: used to obtain the information for updating the first CSI RS resource group for reported channel measurements.
  • the meaning of the sentence that the first CSI reporting configuration is used to determine the first CSI reporting includes: the first CSI reporting configuration is used to indicate that the first CSI reporting does not include a CSI reporting amount.
  • the meaning of the sentence that the first CSI reporting configuration is used to determine the first CSI reporting includes: the first CSI reporting configuration is used to indicate that the first CSI reporting does not include the first type of CSI. Reported volume.
  • the meaning of the sentence that the first CSI reporting configuration is used to determine the first CSI reporting includes: the first CSI reporting configuration indicates the higher layer parameter "resourcesForChannelMeasurement” corresponding to the first CSI reporting, "csi-IM-ResourcesForInterference", “reportQuantity”, “nzp-CSI-RS-ResourcesForInterference”, The value of some or all higher-level parameters in "reportConfigType”, “reportFreqConfiguration”, “timeRestrictionForChannelMeasurements”, “timeRestrictionForInterferenceMeasurements", “subbandSize” or "codebookConfig".
  • the first CSI reporting configuration when used to determine the first function, the first CSI reporting is based on a non-codebook.
  • the first CSI report configuration when used to determine the first function, the first CSI report is generated based on artificial intelligence or machine learning.
  • the first CSI report configuration when used to determine the first function, the first CSI report is generated based on a neural network (Neural Network).
  • a neural network Neuron
  • the first CSI reporting configuration when used to determine the first function, the first CSI reporting is generated based on a CNN (Conventional Neural Networks, convolutional neural network).
  • CNN Conventional Neural Networks, convolutional neural network
  • the first symbol is an OFDM (Orthogonal Frequency Division Multiplexing, Orthogonal Frequency Division Multiplexing) symbol.
  • the first symbol is an SC-FDMA (Single Carrier-Frequency Division Multiple Access, single carrier frequency division multiple access) symbol.
  • SC-FDMA Single Carrier-Frequency Division Multiple Access, single carrier frequency division multiple access
  • the first CSI report occupies the first type of processing unit starting from the first symbol.
  • the first CSI report occupies the first type of processing units starting from the first symbol. .
  • the first type of processing unit includes a CSI processing unit.
  • the first type of processing unit is a CSI processing unit.
  • the first type of processing unit is a general-purpose processing unit.
  • the number of the first type of processing units occupied by the first CSI report is a non-negative integer.
  • the number of the first type of processing units occupied by the first CSI report is equal to 0.
  • the number of the first type of processing units occupied by the first CSI report is greater than 0.
  • the output of the first function includes compressed CSI.
  • the first function is non-linear.
  • the first function is non-codebook.
  • the input of the first function includes CSI.
  • the input of the first function includes a channel matrix.
  • the input of the first function includes a feature vector.
  • the input of the first function includes an uncompressed channel matrix or feature vector.
  • the load size of any input of the first function is greater than the load size of the output of the first function corresponding to the any input.
  • the first function is based on artificial intelligence or machine learning.
  • the first function is based on a neural network (Neural Network).
  • the first function includes a neural network for CSI compression.
  • the first function includes an encoder of a neural network for CSI compression.
  • the first function includes a CNN-based encoder for CSI compression.
  • the first function is obtained through training.
  • the first function includes K1 sub-function, K1 is a positive integer greater than 1; the K1 sub-function includes a convolution function, a pooling function, a cascade function or an activation function. of one or more.
  • one of the K1 sub-functions includes a fully connected layer.
  • one of the K1 sub-functions includes a pooling layer.
  • one of the K1 sub-functions includes at least one convolutional layer.
  • one of the K1 sub-functions includes at least one coding layer.
  • the K1 sub-function there are two sub-functions in the K1 sub-function, including a fully connected layer and at least one coding layer respectively.
  • a coding layer includes at least a convolutional layer and a pooling layer.
  • At least one convolution kernel is used to convolve the input of the first function to generate a corresponding feature map, and at least one feature map output by the convolution layer is reshaped. ) into a vector and input it to the fully connected layer; the fully connected layer converts the vector into the output of the first function.
  • an encoder based on CsiNet or CRNet is used to implement the first function.
  • CsiNet for detailed description of CsiNet, please refer to Chao-Kai Wen, Deep Learning for Massive CSI Feedback, 2018 IEEE Wireless Communications Letters, vol.7 No.5, Oct.2018, etc.
  • CRNet Multi-resolution CSI Feedback with Deep Learning in Massive MIMO System, 2020 IEEE International Conference on Communications (ICC), etc.
  • the first function is a part of the convolution kernel size, the number of convolution layers, the convolution step size, the pooling kernel size, the pooling kernel step size, the pooling function, the activation function or the number of feature maps. Or all acquired through training.
  • some or all of the convolution kernel, pooling kernel, pooling function, activation function, parameters of the pooling function or parameters of the activation function of the first function are obtained through training.
  • the first function is determined by the first node itself.
  • the first CSI reporting configuration is used by the first node to generate the first function.
  • the first CSI reporting configuration is not used by the first node to generate the first function.
  • the act of updating the first CSI report includes obtaining data required for generating and training the first function. channel measurement.
  • the act of updating the first CSI report includes obtaining the user information by measuring the first RS resource group. channel measurements for training the first function.
  • the act of updating the first CSI reporting includes constructing the first function through model training.
  • the act of updating the first CSI reporting includes calculating L1-RSRP or obtaining the L1-RSRP used to calculate the L1-RSRP. At least one of the channel measurements.
  • the first higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration is used to generate the first function;
  • P2 is a positive integer; the Any candidate parameter value among the P2 candidate parameter values belongs to the first candidate parameter value subset, and at least one candidate parameter value in the first candidate parameter value subset does not belong to the P2 candidate parameter values.
  • the first CSI report Configuration is not used to generate the first function.
  • the first subset of candidate parameter values includes the P2 candidate parameter values and the parameter value "none".
  • the first candidate parameter value subset consists of the P2 candidate parameter values and the parameter value "none".
  • P2 is equal to 1.
  • P2 is greater than 1.
  • Embodiment 2 illustrates a schematic diagram of a network architecture according to an embodiment of the present application, as shown in Figure 2.
  • FIG. 2 illustrates the network architecture 200 of LTE (Long-Term Evolution, long-term evolution), LTE-A (Long-Term Evolution Advanced, enhanced long-term evolution) and future 5G systems.
  • the network architecture 200 of LTE, LTE-A and future 5G systems is called EPS (Evolved Packet System) 200.
  • the 5G NR or LTE network architecture 200 can be called 5GS (5G System)/EPS (Evolved Packet System). Grouping System) 200 or some other suitable terminology.
  • 5GS/EPS 200 may include one or more UE (User Equipment) 201, a UE 241 that communicates with the UE 201 on a side link, NG-RAN (Next Generation Radio Access Network) 202, 5GC (5G CoreNetwork (5G Core Network)/EPC (Evolved Packet Core) 210, HSS (Home Subscriber Server)/UDM (Unified Data Management) 220 and Internet Services 230.
  • 5GS/EPS200 Interconnection with other access networks is possible, but these entities/interfaces are not shown for simplicity.
  • 5GS/EPS200 provides packet switched services, however those skilled in the art will readily appreciate that the various concepts presented throughout this application can be extended to networks providing circuit switched services.
  • NG-RAN 202 includes NR (New Radio) Node B (gNB) 203 and other gNBs 204.
  • gNB 203 provides user and control plane protocol termination towards UE 201.
  • gNB 203 may connect to other gNBs 204 via the Xn interface (eg, backhaul).
  • the gNB 203 may also be called a base station, base transceiver station, radio base station, radio transceiver, transceiver function, Basic Service Set (BSS), Extended Service Set (ESS), TRP (Transmit Receive Point) or some other suitable terminology.
  • gNB203 provides UE201 with an access point to 5GC/EPC210.
  • Examples of UE 201 include cellular phones, smart phones, Session Initiation Protocol (SIP) phones, laptop computers, personal digital assistants (PDAs), satellite radios, global positioning systems, multimedia devices, video devices, digital audio players ( For example, MP3 players), cameras, game consoles, drones, aircraft, narrowband physical network devices, machine type communications devices, land vehicles, cars, wearable devices, or any other similarly functional device.
  • UE 201 may also refer to UE 201 as a mobile station, subscriber station, mobile unit, subscriber unit, wireless unit, remote unit, mobile device, wireless device, wireless communication device, remote device, mobile subscriber station, access terminal, Mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, client or some other suitable term.
  • 5GC/EPC210 includes MME (Mobility Management Entity, mobility management entity)/AMF (Authentication Management Field, authentication management domain)/SMF (Session Management Function, session management function) 211.
  • MME/AMF/SMF214 S-GW (Service Gateway, Service Gateway)/UPF (User Plane Function, User Plane Function) 212 and P-GW (Packet Date Network Gateway, Packet Data Network Gateway)/UPF213.
  • MME/AMF/SMF211 is the control node that handles signaling between UE201 and 5GC/EPC210. Basically MME/AMF/SMF211 provides bearer and connection management.
  • Internet Protocol Internet Protocol
  • S-GW/UPF212 All user IP (Internet Protocol) packets are transmitted through S-GW/UPF212, and S-GW/UPF212 itself is connected to P-GW/UPF213.
  • P-GW provides UE IP address allocation and other functions.
  • P-GW/UPF 213 is connected to Internet service 230.
  • Internet services 230 include Internet protocol services corresponding to operators, which may specifically include Internet, intranet, IMS (IP Multimedia Subsystem, IP Multimedia Subsystem) and packet switching (Packet switching) services.
  • the first node in this application includes the UE201.
  • the second node in this application includes the gNB203.
  • the wireless link between the UE201 and the gNB203 includes a cellular network link.
  • the sender of the first CSI reporting configuration includes the gNB203.
  • the recipient of the first CSI reporting configuration includes the UE201.
  • the performer of the behavior of updating the first CSI report includes the UE201.
  • the UE 201 supports CNN-based CSI compression.
  • the UE 201 supports AI/ML-based CSI compression.
  • the UE 201 supports using training data to generate a trained model or some parameters in the model.
  • the UE 201 supports determining at least some parameters of the CNN for CSI compression through training.
  • the gNB 203 supports using AI or ML to decompress CSI.
  • Embodiment 3 illustrates a schematic diagram of an embodiment of the wireless protocol architecture of the user plane and control plane according to an embodiment of the present application, as shown in FIG. 3 .
  • Embodiment 3 shows a schematic diagram of an embodiment of a wireless protocol architecture of a user plane and a control plane according to the present application, as shown in FIG. 3 .
  • Figure 3 is a schematic diagram illustrating an embodiment of a radio protocol architecture for user plane 350 and control plane 300
  • Figure 3 shows with three layers for a first communication node device (UE, gNB or RSU in V2X) and a second Radio protocol architecture of the control plane 300 between communication node devices (gNB, UE or RSU in V2X), or between two UEs: Layer 1, Layer 2 and Layer 3.
  • Layer 1 (L1 layer) is the lowest layer and implements various PHY (physical layer) signal processing functions. The L1 layer will be called PHY301 in this article.
  • Layer 2 (L2 layer) 305 is above the PHY 301 and is responsible for the link between the first communication node device and the second communication node device, or between two UEs.
  • L2 layer 305 includes MAC (Medium Access Control, media access control) sublayer 302, RLC (Radio Link Control, wireless link layer control protocol) sublayer 303 and PDCP (Packet Data Convergence Protocol, packet data convergence protocol) sublayer 304. These sub-layers terminate at the second communication node device.
  • PDCP sublayer 304 provides multiplexing between different radio bearers and logical channels. The PDCP sublayer 304 also provides security by encrypting data packets, and provides handoff support for a first communication node device between second communication node devices.
  • the RLC sublayer 303 provides segmentation and reassembly of upper layer data packets, retransmission of lost data packets, and reordering of data packets to compensate for HARQ artifacts. resulting in out-of-order reception.
  • MAC sublayer 302 provides multiplexing between logical and transport channels. The MAC sublayer 302 is also responsible for allocating various radio resources (eg, resource blocks) in a cell among first communication node devices. MAC sublayer 302 is also responsible for HARQ operations.
  • the RRC (Radio Resource Control, Radio Resource Control) sublayer 306 in layer 3 (L3 layer) in the control plane 300 is responsible for obtaining radio resources (ie, radio bearers) and using the connection between the second communication node device and the first communication node device. Inter-RRC signaling is used to configure the lower layers.
  • the radio protocol architecture of the user plane 350 includes layer 1 (L1 layer) and layer 2 (L2 layer).
  • the PDCP sublayer 354 in the layer 355, the RLC sublayer 353 in the L2 layer 355, and the MAC sublayer 352 in the L2 layer 355 are generally the same as the corresponding layers and sublayers in the control plane 300, but the PDCP sublayer 354 is also Provides header compression for upper layer packets to reduce radio transmission overhead.
  • the L2 layer 355 in the user plane 350 also includes an SDAP (Service Data Adaptation Protocol, Service Data Adaptation Protocol) sublayer 356.
  • the SDAP sublayer 356 is responsible for the mapping between QoS flows and data radio bearers (DRB, Data Radio Bearer). , to support business diversity.
  • DRB Data Radio Bearer
  • the first communication node device may have several upper layers above the L2 layer 355, including a network layer (eg, IP layer) terminating at the P-GW on the network side and another terminating at the connection.
  • the application layer at one end (e.g., remote UE, server, etc.).
  • the wireless protocol architecture in Figure 3 is applicable to the first node in this application.
  • the wireless protocol architecture in Figure 3 is applicable to the second node in this application.
  • the first CSI reporting configuration is generated in the RRC sublayer 306.
  • the higher layer in this application refers to the layer above the physical layer.
  • Embodiment 4 illustrates a schematic diagram of a first communication device and a second communication device according to an embodiment of the present application, as shown in FIG. 4 .
  • Figure 4 is a block diagram of a first communication device 410 and a second communication device 450 communicating with each other in the access network.
  • the first communication device 410 includes a controller/processor 475, a memory 476, a receive processor 470, a transmit processor 416, a multi-antenna receive processor 472, a multi-antenna transmit processor 471, a transmitter/receiver 418 and an antenna 420.
  • the second communication device 450 includes a controller/processor 459, a memory 460, a data source 467, a transmit processor 468, a receive processor 456, a multi-antenna transmit processor 457, a multi-antenna receive processor 458, a transmitter/receiver 454 and antenna 452.
  • Controller/processor 475 implements the functionality of the L2 layer.
  • the controller/processor 475 provides header compression, encryption, packet segmentation and reordering, multiplexing between logical and transport channels, and control of the second communication device 450 based on various priority metrics. Radio resource allocation.
  • the controller/processor 475 is also responsible for HARQ operation, retransmission of lost packets, and signaling to the second communications device 450 .
  • Transmit processor 416 and multi-antenna transmit processor 471 implement various signal processing functions for the L1 layer (ie, physical layer).
  • the transmit processor 416 implements encoding and interleaving to facilitate forward error correction (FEC) at the second communications device 450, as well as based on various modulation schemes (e.g., binary phase shift keying (BPSK), quadrature phase shift keying (QPSK), M Phase Shift Keying (M-PSK), M Quadrature Amplitude Modulation (M-QAM)) constellation mapping.
  • FEC forward error correction
  • the multi-antenna transmit processor 471 performs digital spatial precoding on the coded and modulated symbols, including codebook-based precoding and non-codebook-based precoding, and beamforming processing to generate one or more parallel streams.
  • Transmit processor 416 maps each parallel stream to a subcarrier, multiplexes the modulated symbols with a reference signal (eg, a pilot) in the time and/or frequency domain, and then uses an inverse fast Fourier transform (IFFT ) to generate a physical channel carrying a stream of time-domain multi-carrier symbols. Then the multi-antenna transmit processor 471 performs transmit analog precoding/beamforming operations on the time domain multi-carrier symbol stream. Each transmitter 418 converts the baseband multi-carrier symbol stream provided by the multi-antenna transmit processor 471 into a radio frequency stream, which is then provided to a different antenna 420.
  • IFFT inverse fast Fourier transform
  • each receiver 454 receives the signal via its respective antenna 452 at the second communications device 450 .
  • Each receiver 454 recovers the information modulated onto the radio frequency carrier and converts the radio frequency stream into a baseband multi-carrier symbol stream that is provided to a receive processor 456 .
  • the receive processor 456 and the multi-antenna receive processor 458 implement various signal processing functions of the L1 layer.
  • Multi-antenna receive processor 458 performs receive analog precoding/beamforming operations on the baseband multi-carrier symbol stream from receiver 454.
  • the receive processor 456 converts the baseband multi-carrier symbol stream after the received analog precoding/beamforming operation from the time domain to the frequency domain using a Fast Fourier Transform (FFT).
  • FFT Fast Fourier Transform
  • the physical layer data signal and the reference signal are demultiplexed by the receiving processor 456, where the reference signal will be used for channel estimation, and the data signal is recovered after multi-antenna detection in the multi-antenna receiving processor 458 with the second Any parallel flow to which communication device 450 is the destination.
  • the symbols on each parallel stream are demodulated and recovered in the receive processor 456, and soft decisions are generated.
  • the receive processor 456 then decodes and deinterleaves the soft decisions to recover the upper layer data and control signals transmitted by the first communications device 410 on the physical channel.
  • Controller/processor 459 implements the functions of the L2 layer. Controller/processor 459 may be associated with memory 460 which stores program code and data. Memory 460 may be referred to as computer-readable media. In the DL, the controller/processor 459 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, control signal processing to recover upper layer packets from the core network. The upper layer packets are then provided to all protocol layers above the L2 layer. Various control signals may also be provided to L3 for L3 processing. Controller/processor 459 is also responsible for error detection using acknowledgment (ACK) and/or negative acknowledgment (NACK) protocols to support HARQ operations.
  • ACK acknowledgment
  • NACK negative acknowledgment
  • a data source 467 is used to provide upper layer data packets to a controller/processor 459.
  • Data source 467 represents all protocol layers above the L2 layer.
  • the controller/processor 459 implements header compression, encryption, packet segmentation and reordering, and logical AND based on the wireless resource allocation of the first communication device 410 Multiplexing between transport channels, implementing L2 layer functions for the user plane and control plane.
  • the controller/processor 459 is also responsible for HARQ operation, retransmission of lost packets, and signaling to the first communications device 410 .
  • the transmit processor 468 performs modulation mapping and channel coding processing, and the multi-antenna transmit processor 457 performs digital multi-antenna spatial precoding, including codebook-based precoding and non-codebook-based precoding, and beam forming processing, and then transmits
  • the processor 468 modulates the generated parallel streams into multi-carrier/single-carrier symbol streams, which undergo analog precoding/beamforming operations in the multi-antenna transmit processor 457 and then are provided to different antennas 452 via the transmitter 454.
  • Each transmitter 454 first converts the baseband symbol stream provided by the multi-antenna transmission processor 457 into a radio frequency symbol stream, and then provides it to the antenna 452.
  • the functionality at the first communication device 410 is similar to that in the transmission from the first communication device 410 to the second communication device 450.
  • the reception function at the second communication device 450 is described in the transmission.
  • Each receiver 418 receives radio frequency signals through its corresponding antenna 420, converts the received radio frequency signals into baseband signals, and provides the baseband signals to multi-antenna receive processor 472 and receive processor 470.
  • the receiving processor 470 and the multi-antenna receiving processor 472 jointly implement the functions of the L1 layer.
  • Controller/processor 475 implements L2 layer functions. Controller/processor 475 may be associated with memory 476 that stores program code and data. Memory 476 may be referred to as computer-readable media.
  • the controller/processor 475 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, control signal processing to recover upper layer data packets from the second communications device 450 .
  • Upper layer packets from controller/processor 475 may be provided to the core network.
  • Controller/processor 475 is also responsible for error detection using ACK and/or NACK protocols to support HARQ operations.
  • the second communication device 450 includes: at least one processor and at least one memory, the at least one memory includes computer program code; the at least one memory and the computer program code are configured to interact with the At least one processor is used together.
  • the second communication device 450 receives at least the first CSI reporting configuration; and updates the first CSI reporting.
  • the first CSI reporting configuration is used to determine the first CSI reporting;
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter;
  • the first higher layer parameter is set to a first Parameter value, the first parameter value belongs to the first candidate parameter value subset;
  • the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement;
  • the first CSI report does not occupy the first type of processing unit before the first symbol; the number of the first type of processing unit occupied by the first CSI report and whether the first CSI reporting configuration is used to generate the first function related.
  • the second communication device 450 includes: a memory that stores a program of computer-readable instructions that, when executed by at least one processor, generates actions, and the actions include: receiving The first CSI reporting configuration is configured; and the first CSI reporting is updated.
  • the first communication device 410 includes: at least one processor and at least one memory, the at least one memory includes computer program code; the at least one memory and the computer program code are configured to interact with the At least one processor is used together.
  • the first communication device 410 sends at least the first CSI reporting configuration.
  • the first CSI reporting configuration is used to determine the first CSI reporting; the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value , the first parameter value belongs to the first candidate parameter value subset; the second higher layer parameter is used to determine the first RS resource group, and the first RS resource group is used for channel measurement; the first The target receiver of the CSI report configuration updates the first CSI report; the first CSI report does not occupy the first type of processing unit before the first symbol; the first type of processing unit occupied by the first CSI report The number is related to whether the first CSI reporting configuration is used to generate the first function.
  • the first communication device 410 includes: a memory that stores a program of computer-readable instructions that, when executed by at least one processor, generates actions, and the actions include: sending the The first CSI reporting configuration is described above.
  • the first node in this application includes the second communication device 450.
  • the second node in this application includes the first communication device 410 .
  • the antenna 452 the receiver 454, the reception processor 456, the multi-antenna reception processor 458, the controller/processor 459, the memory 460, the data At least one of the sources 467 ⁇ is used to receive the first CSI reporting configuration; ⁇ the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the control The processor/processor 475, at least one of the memories 476 ⁇ is used to send the first CSI reporting configuration.
  • the antenna 452 the receiver 454, the reception processor 456, the multi-antenna reception processor 458, the controller/processor 459, the memory 460, the data At least one of the sources 467 ⁇ is used to update the first CSI report.
  • the antenna 452 the receiver 454, the reception processor 456, the multi-antenna reception processor 458, the controller/processor 459, the memory 460, the data At least one of the sources 467 ⁇ is used to receive the first CSI reporting configuration set; ⁇ the antenna 420, the transmitter 418, the transmit processor 416, the multi-antenna transmit processor 471, the Controller/processor 475, at least one of the memories 476 ⁇ is used to send the first CSI reporting configuration set.
  • At least one of ⁇ the antenna 420, the receiver 418, the reception processor 470, the multi-antenna reception processor 472, the controller/processor 475, and the memory 476 ⁇ One is used to receive the second CSI report; ⁇ the antenna 452, the transmitter 454, the transmit processor 468, the multi-antenna transmit processor 457, the controller/processor 459, At least one of the memory 460 and the data source 467 is used to send the second CSI report.
  • Embodiment 5 illustrates a flow chart of transmission according to an embodiment of the present application; as shown in Figure 5.
  • the second node U1 and the first node U2 are communication nodes transmitting through the air interface.
  • the steps in blocks F51 to F55 are respectively optional.
  • the first CSI reporting configuration is sent in step S511; the first CSI reporting configuration set is sent in step S5101; the RS is sent in the first RS resource group in step S5102; and the second CSI reporting configuration is sent in step S5103.
  • the first node U2 For the first node U2, receive the first CSI reporting configuration in step S521; receive the first CSI reporting configuration set in step S5201; receive RS in the first RS resource group in step S5202; update the first CSI reporting configuration in step S5202.
  • CSI report ; receive RS in the second RS resource group in step S5203; update the second CSI report in step S5204; send the second CSI report in step S5205.
  • the first CSI reporting configuration is used by the first node U2 to determine the first CSI reporting;
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter;
  • the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to a first candidate parameter value subset;
  • the second higher layer parameter is used by the first node U2 to determine the first RS Resource group, the first RS resource group is used by the first node U2 for channel measurement;
  • the first CSI report does not occupy the first type of processing unit before the first symbol;
  • the first CSI report occupies all the
  • the number of the first type of processing units is related to whether the first CSI reporting configuration is used by the first node U2 to generate the first function.
  • the first node U2 is the first node in this application.
  • the second node U1 is the second node in this application.
  • the air interface between the second node U1 and the first node U2 includes a wireless interface between the base station equipment and the user equipment.
  • the air interface between the second node U1 and the first node U2 includes a wireless interface between the relay node device and the user equipment.
  • the air interface between the second node U1 and the first node U2 includes a wireless interface between user equipment and user equipment.
  • the second node U1 is the serving cell maintenance base station of the first node U2.
  • the first CSI reporting configuration is transmitted in PDSCH (Physical Downlink Shared Channel).
  • PDSCH Physical Downlink Shared Channel
  • the steps in block F52 in Figure 5 exist, and the above-mentioned method used in the first node for wireless communication includes: receiving RS in the first RS resource group.
  • the steps in block F52 in Figure 5 exist, and the method used in the second node for wireless communication includes: sending RS in the first RS resource group.
  • the steps in block F51 in Figure 5 exist, the first CSI reporting configuration set includes a second CSI reporting configuration, and the second CSI reporting configuration is used by the first node U2 to determine Second CSI report.
  • the second CSI report includes the first compressed CSI; the first pre-compressed CSI is used by the first node U2 as the input of the first function.
  • the first compressed CSI is generated.
  • the first CSI reporting configuration set includes at least one CSI reporting configuration.
  • the first CSI reporting configuration set consists of the second CSI reporting configuration.
  • the first CSI reporting configuration set includes at least one CSI reporting configuration except the second CSI reporting configuration.
  • any CSI reporting configuration in the first CSI reporting configuration set is carried by higher layer signaling.
  • any CSI reporting configuration in the first CSI reporting configuration set is carried by RRC signaling.
  • any CSI reporting configuration in the first CSI reporting configuration set is carried by an IE.
  • any CSI reporting configuration in the first CSI reporting configuration set is an IE.
  • any CSI reporting configuration in the first CSI reporting configuration set includes information in all or part of the fields in a CSI-ReportConfig IE.
  • any CSI reporting configuration in the first CSI reporting configuration set is a CSI-ReportConfig IE.
  • any CSI reporting configuration in the first CSI reporting configuration set is identified by a CSI-ReportConfigId.
  • the CSI-ReportConfigId of any two CSI reporting configurations in the first CSI reporting configuration set are different.
  • the second CSI reporting configuration is identified by a CSI-ReportConfigId.
  • the CSI-ReportConfigId of the second CSI reporting configuration is different from the CSI-ReportConfigId of the first CSI reporting configuration.
  • the second CSI report is a CSI report configured for the second CSI report.
  • the second CSI report is generated according to the second CSI report configuration.
  • the second CSI report is generated and transmitted according to the second CSI report configuration.
  • the second CSI report includes one or more CSI report quantities.
  • the second CSI reporting configuration is used to determine: a RS resource group used to obtain channel measurements for calculating the second CSI reporting.
  • the second CSI reporting configuration is used to determine: obtain a resource group used to calculate interference measurements for the second CSI reporting.
  • the second CSI reporting configuration is used to indicate which CSI reporting amounts are included in the second CSI reporting.
  • the second CSI reporting configuration includes a first given higher-layer parameter, and the name of the first given higher-layer parameter includes “resourcesForChannelMeasurement”; the first node is based on the first given The RS resource group indicated by the higher layer parameter obtains channel measurements used to calculate the second CSI report.
  • any RS resource in the RS resource group indicated by the first given higher layer parameter is a CSI-RS resource or SS/PBCH Block resource.
  • the second CSI reporting configuration includes a second given higher-layer parameter, and the name of the second given higher-layer parameter includes "ResourcesForInterference"; the first node is based on the second given The resource group indicated by the higher layer parameter obtains the interference measurement used to calculate the second CSI report.
  • any resource in the resource group indicated by the second given higher layer parameter is a CSI-IM (Interference Measurement) resource or NZP CSI-RS resource.
  • the second CSI reporting configuration includes a third given higher layer parameter, and the name of the third given higher layer parameter includes “reportQuantity”; the third given higher layer parameter indicates the The amount of CSI report included in the second CSI report.
  • the second CSI reporting configuration is used to indicate the higher layer parameters "resourcesForChannelMeasurement”, “csi-IM-ResourcesForInterference”, and “reportQuantity” corresponding to the second CSI reporting. Values for some or all higher-level parameters in "nzp-CSI-RS-ResourcesForInterference", “reportConfigType”, “reportFreqConfiguration”, "timeRestrictionForChannelMeasurements”, “timeRestrictionForInterferenceMeasurements", “subbandSize” or "codebookConfig".
  • the second CSI report includes an RI.
  • the second CSI report includes at least one CQI.
  • the second CSI report includes a wideband CQI.
  • the second CSI report includes at least one sub-band CQI.
  • the second CSI report is based on non-codebook.
  • the second CSI report is generated based on artificial intelligence or machine learning.
  • the second CSI report is generated based on a neural network.
  • sending the second CSI report means sending the CSI report amount of the second CSI report.
  • sending the second CSI report means reporting the CSI report amount of the second CSI report.
  • receiving the second CSI report means receiving the CSI report amount of the second CSI report.
  • any CSI reporting configuration in the first CSI reporting configuration set is transmitted in the PDSCH.
  • the second CSI report is transmitted in PUSCH (Physical Uplink Shared CHannel, Physical Uplink Shared Channel).
  • PUSCH Physical Uplink Shared CHannel, Physical Uplink Shared Channel
  • the second CSI report is transmitted in PUCCH (Physical Uplink Control Channel).
  • PUCCH Physical Uplink Control Channel
  • measurements for a second RS resource group are used to generate the first pre-compression CSI
  • the second RS resource group includes at least one RS resource, and any RS in the second RS resource group
  • the resource is a CSI-RS resource or SS/PBCH Block resource.
  • the steps in block F53 in Figure 5 exist, and the method used in the first node for wireless communication includes: receiving RS in the second RS resource group.
  • the steps in block F53 in Figure 5 exist, and the method used in the second node for wireless communication includes: sending RS in the second RS resource group.
  • the steps in block F54 in Figure 5 exist, and the method used in the first node for wireless communication includes: updating the second CSI report.
  • Embodiment 6 illustrates a schematic diagram of a processing system based on artificial intelligence or machine learning according to an embodiment of the present application; as shown in FIG. 6 .
  • Figure 6 includes a second processor, a third processor, a fourth processor and a fifth processor.
  • the second processor sends a first data set to the third processor and a second data set to the fourth processor;
  • the third processor sends a first data set to the third processor according to the first data.
  • the set generates a target first type parameter group, and the third processor sends the generated target first type parameter group to the fourth processor;
  • the fourth processor uses the target first type parameter group
  • the second data set is processed to obtain a first type of output, and the fourth processor sends the first type of output to the fifth processor.
  • the first type of feedback and the second type of feedback are optional.
  • the fourth processor sends first-type feedback to the third processor, and the first-type feedback is used to trigger recalculation or update of the target first-type parameter set.
  • the fifth processor sends a second type of feedback to the second processor, and the second type of feedback is used to generate the first data set or the second data set, or the second data set.
  • the second type of feedback is used to trigger the sending of the first data set or the second data set.
  • the second processor generates the first data set and the second data set based on measurements of a first type of wireless signal, where the first type of wireless signal includes downlink RS.
  • measurements for the first RS resource group are used to generate the first data set.
  • measurements for the second RS resource group are used to generate the second data set.
  • the second processor and the fourth processor belong to the first node, and the fifth processor belongs to the second node.
  • the second CSI report belongs to the first type of output.
  • the first compressed CSI belongs to the first type of output.
  • the first pre-compression CSI belongs to the second data set.
  • the third processor belongs to the first node.
  • the above embodiment avoids passing the first data set to the second node.
  • the first data set includes training data (Training Data)
  • the second data set includes inference data (Inference Data)
  • the third processor is used for model training (Model Training). After training The model is described by the target first type parameter set.
  • the fourth processor constructs a model according to the target first-type parameter set, and then inputs the second data set into the constructed model to obtain the first-type output.
  • the fourth processor includes the first function.
  • the first function is described by the target first type parameter group.
  • the target first-type parameter set is used to construct the first function.
  • the third processor is used for model training (Model Training), the target first type parameter group is used to describe the trained model, and the trained model is used to construct the third a function.
  • the first function is used to generate the first type of output.
  • the fourth processor generates a recovery data set based on the first type of output, and the error between the recovery data set and the second data set is used to generate the first type of feedback.
  • the recovery data set is generated using an inverse operation similar to the target first type parameter group.
  • the generation of the recovery data set adopts the inverse operation of the first function.
  • the first type of feedback is used to reflect the performance of the trained model; when the performance of the trained model cannot meet the requirements, the third processing opportunity recalculates the target third A type of parameter group.
  • the performance of the trained model is considered to be unable to meet the requirements.
  • the fourth processor belongs to a second node, and the first node reports the target first type parameter set to the second node.
  • the fifth processor includes the second function.
  • the input of the second function belongs to the first type of output.
  • the meaning of the sentence whether the first CSI reporting configuration is used to generate the first function includes: whether the first CSI reporting configuration is used to generate the target first type parameter group.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting configuration is used to generate the target first type parameter group.
  • the first CSI reporting configuration when the first CSI reporting configuration is not used to generate the first function, the first CSI reporting configuration is not used to generate the target first type parameter group.
  • the behavior of updating the first CSI reporting is used to generate the target first type parameter set.
  • the behavior of updating the first CSI reporting is used to generate the first data set.
  • the second type of CSI reporting amount includes the target first type parameter group.
  • the second type of CSI reported amount belongs to the target first type parameter group.
  • measurements for the first RS resource group are used to generate the first data set.
  • the first CSI reporting configuration is used to generate the first function
  • the first RS resource group Measurements are used to obtain channel measurements used to generate the first data set.
  • the target first type parameter group includes: convolution kernel size, convolution layer number, convolution step size, pooling kernel size, pooling kernel step size, pooling function, activation function, or feature One or more of the number of images.
  • the target first type parameter group includes: one or more of a convolution kernel, a pooling kernel, a pooling function, an activation function, parameters of a pooling function, or parameters of an activation function.
  • Embodiment 7 illustrates a schematic diagram in which the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application; as shown in FIG. 7 .
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to train the first function.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the behavior of updating the CSI reporting for the first CSI reporting configuration is used to train the first function.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the act of updating the CSI reporting for the first CSI reporting configuration includes training the first function. at least part of the operation.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to generate the target first type parameter group.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the behavior of updating the CSI reporting for the first CSI reporting configuration is used to generate the target first type Parameter group.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is configured to obtain data required for training the first function. RS resource group.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the act of updating the CSI reporting for the first CSI reporting configuration includes obtaining information for training the first function. channel measurement.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the behavior of updating the first CSI reporting is used to train the first function.
  • the meaning of the sentence that the first CSI report configuration is used to generate the first function includes: the behavior of updating the first CSI report includes part of the operation in the training of the first function .
  • the meaning of the sentence that the first CSI report configuration is used to generate the first function includes: the behavior of updating the first CSI report includes obtaining channel measurements for training the first function. .
  • the meaning of the sentence that the first CSI report configuration is used to generate the first function includes: the behavior of updating the first CSI report includes measuring the first RS resource group. Channel measurements used to train the first function are obtained.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used for model training (Model Training), and the first function is based on obtained by training the model.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the behavior of updating the CSI reporting for the first CSI reporting configuration is used for the model training.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the act of updating the CSI reporting for the first CSI reporting configuration includes at least part of the operations in the model training. .
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to configure an RS for obtaining data required for model training. Resource group.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the act of updating the CSI reporting for the first CSI reporting configuration includes obtaining a channel for the model training. Measurement.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the behavior of updating the first CSI reporting is used for the model training.
  • the meaning of the sentence that the first CSI report configuration is used to generate the first function includes: the behavior of updating the first CSI report includes part of the operation in the model training.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: updating the first
  • the behavior of CSI reporting includes obtaining channel measurements for the model training.
  • the meaning of the sentence that the first CSI report configuration is used to generate the first function includes: the behavior of updating the first CSI report includes measuring the first RS resource group. Channel measurements used for training the model are obtained.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to configure the frequency domain resource for which the input of the first function is directed. scope.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to configure the frequency domain resource for which the output of the first function is directed. scope.
  • the meaning of the sentence that the first CSI reporting configuration is used to generate the first function includes: the first CSI reporting configuration is used to configure the number of RS ports corresponding to the input of the first function. range.
  • measuring one RS resource group means measuring the RS transmitted in each RS resource in the one RS resource group.
  • measuring an RS resource group means measuring RS transmitted in at least one RS resource in the one RS resource group.
  • Embodiment 8 illustrates a schematic diagram in which the first CSI reporting configuration is not used to generate the first function according to an embodiment of the present application; as shown in FIG. 8 .
  • the meaning of the sentence that the first CSI reporting configuration is not used to generate the first function includes: the behavior of updating the CSI reporting for the first CSI reporting configuration is not used to train the first function.
  • the meaning of the sentence that the first CSI reporting configuration is not used to generate the first function includes: the act of updating the CSI reporting for the first CSI reporting configuration does not include obtaining information for training the first function.
  • the meaning of the sentence that the first CSI report configuration is not used to generate the first function includes: the behavior of updating the first CSI report is not used to train the first function.
  • the meaning of the sentence that the first CSI report configuration is not used to generate the first function includes: the behavior of updating the first CSI report does not include obtaining a configuration for training the first function. Channel measurements.
  • Embodiment 9 illustrates a schematic diagram related to the number of first-type processing units occupied by the first CSI report and whether the first CSI report configuration is used to generate the first function according to an embodiment of the present application; as shown in Figure 9 .
  • the number of the first type of processing units occupied by the first CSI reporting is equal to 0 or 1.
  • the number of the first type of processing units occupied by the first CSI reporting and the first RS It depends on whether the resource group is configured with the higher-level parameter "trs-Info".
  • the first CSI reporting configuration is not used to generate the first function and the first RS resource group is configured with a higher layer parameter “trs-Info”, the first CSI reporting The number of occupied processing units of the first type is equal to zero.
  • the first CSI reporting configuration is not used to generate the first function and the first RS resource group is not configured with a higher layer parameter “trs-Info”, the first CSI reporting The number of occupied processing units of the first type is equal to one.
  • the number of the first type of processing units and the first RS resource occupied by the first CSI reporting is used to generate the first function, the number of the first type of processing units and the first RS resource occupied by the first CSI reporting Related to the number of RS resources included in the group.
  • the number of the first type of processing units occupied by the first CSI report changes with the number of RS resources included in the first RS resource group.
  • the number of the first type of processing units occupied by the first CSI report is linearly related to the number of RS resources included in the first RS resource group, and the A linear coefficient between the number of the first type of processing units occupied by the first CSI report and the number of RS resources included in the first RS resource group is a positive real number.
  • the number of RS resources included in the first RS resource group is equal to A1
  • the number of the first type of processing units occupied by the first CSI report is equal to B1
  • the number of the first type of processing units occupied by the first CSI report is equal to B2
  • the A1 is greater than the A2
  • the B1 is not less than the B2.
  • the number of the first type of processing units and the first RS resource occupied by the first CSI reporting It is related to the maximum number of RS ports of the RS resources in the group.
  • the number of the first type of processing units occupied by the first CSI report varies with the maximum value of the number of RS ports of the RS resources in the first RS resource group. Variety.
  • the first type of processing unit occupied by the first CSI report The number is equal to B1; when the maximum value of the RS port number of RS resources in the first RS resource group is equal to A2, the first CSI report occupies the first type of processing unit The quantity is equal to B2; the A1 is greater than the A2, and the B1 is not less than the B2.
  • the number of the first type of processing units and the first RS resource occupied by the first CSI reporting It is related to the bandwidth of the frequency domain resources occupied by the group.
  • the bandwidth of the frequency domain resources occupied by the first RS resource group is expressed as the number of sub-bands.
  • the bandwidth of the frequency domain resources occupied by the first RS resource group is expressed as the number of RBs (Resource Block).
  • the unit of the bandwidth of the frequency domain resources occupied by the first RS resource group is MHz (megahertz) or KHz (kilohertz).
  • the number of the first type of processing units occupied by the first CSI report changes with the bandwidth of the frequency domain resources occupied by the first RS resource group.
  • the bandwidth of the frequency domain resources occupied by the first RS resource group is equal to A1
  • the number of the first type of processing units occupied by the first CSI report is equal to B1
  • the bandwidth of the frequency domain resources occupied by the first RS resource group is equal to A2
  • the number of the first type of processing units occupied by the first CSI report is equal to B2
  • the A1 is greater than the A2
  • the B1 is not smaller than the B2.
  • the number of the first type of processing units occupied by the first CSI reporting is equal to the remaining first The number of class processing units; the remaining number of the first class processing units is equal to the first threshold minus a first integer, the first threshold is indicated by a higher layer parameter, and the first integer is equal to the The number of processing units of the first type that have been occupied in the first symbol.
  • the first integer when the first integer is equal to 0, if the first CSI reporting configuration is used to generate the first function, the number of the first type of processing units occupied by the first CSI reporting is equal to a first threshold; the first threshold is indicated by a higher layer parameter; and the first integer is equal to the number of the first type of processing units that have been occupied in the first symbol.
  • the first threshold is indicated by a fifth higher-layer parameter, and the name of the fifth higher-layer parameter includes "simultaneousCSI-Reports".
  • the fifth higher layer parameter is "simultaneousCSI-ReportsPerCC" or “simultaneousCSI-ReportsAllCC”.
  • the first threshold of the first node is indicated by a higher layer parameter.
  • the first threshold is the number of simultaneous CSI calculations supported by the first node.
  • the first threshold is the number of the first type of processing units supported by the first node.
  • the first threshold is the maximum number of the first type of processing units that can be occupied in the same OFDM symbol.
  • the first integer is equal to the number of the first type of processing units occupied in the first symbol before the number of the first type of processing units occupied in the first CSI report is determined.
  • the number of class processing units is equal to the number of the first type of processing units occupied in the first symbol before the number of the first type of processing units occupied in the first CSI report is determined.
  • the first integer is equal to the first CSI reporting group that has been occupied in the first symbol before the CSI reporting group occupying the first type of processing unit from the first symbol is determined.
  • the number of the first type of processing units occupied by the first CSI report and the second higher layer parameter are reflected in the number of occupied by the first CSI report.
  • the number of processing units of the first type is related to the first RS resource group.
  • the number of the first type of processing units occupied by the first CSI reporting and the second update related to high-level parameters when the first CSI reporting configuration is not used to generate the first function, the number of the first type of processing units occupied by the first CSI reporting and the second update related to high-level parameters.
  • the number of the first type of processing units occupied by the first CSI reporting and the The second higher level parameter is related.
  • Embodiment 10 illustrates a schematic diagram in which the third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application; as shown in FIG. 10 .
  • the third higher layer parameter is used by the first node to determine whether the first CSI reporting configuration is used to generate the first function.
  • the name of the third higher-level parameter includes "codebookConfig".
  • the third higher-level parameter is a higher-level parameter "codebookConfig”.
  • the third higher-level parameter is a higher-level parameter "codebookType”.
  • the third higher layer parameter is a higher layer parameter "subType".
  • the third higher layer parameter includes all or part of the information in at least one domain of the first CSI reporting configuration.
  • the first higher layer parameter, the second higher layer parameter and the third higher layer parameter are respectively carried by different fields of the first CSI reporting configuration.
  • the third higher layer parameter explicitly indicates whether the first CSI reporting configuration is used to generate the first function.
  • the third higher layer parameter implicitly indicates whether the first CSI reporting configuration is used to generate the first function.
  • the third higher layer parameter implicitly indicates whether the first CSI reporting configuration is used to generate the first function by indicating other information.
  • the first CSI reporting configuration is used to generate the first function
  • the second candidate parameter value subset The set includes at least one candidate parameter value.
  • the first CSI reporting configuration is not used to generate the first function .
  • the candidate values of the third higher-level parameter include the second candidate parameter value subset and at least one parameter value that does not belong to the second candidate parameter value subset.
  • the third higher layer parameter indicates a second parameter value
  • the first CSI reporting configuration is used to generate the first function
  • the second subset of candidate parameter values includes at least one candidate parameter value
  • the first CSI reporting configuration is not used to generate the first function.
  • the third higher-level parameter indicates the second parameter value from a second candidate parameter value set
  • the second candidate parameter value set includes the second candidate parameter value sub-set. set and at least one parameter value that does not belong to the second subset of candidate parameter values.
  • the second subset of candidate parameter values includes only one candidate parameter value.
  • the second subset of candidate parameter values includes a plurality of candidate parameter values.
  • the third higher layer parameter indicates the type of the first CSI reporting configuration.
  • the type of the first CSI reporting configuration is one of a first type set, the first type set includes codebook-based CSI reporting, and the first type set also includes nonlinear-based CSI reporting. Report, at least one of non-codebook-based CSI reporting, artificial intelligence or machine learning-based CSI reporting, neural network-based CSI reporting, compressed CSI reporting, or CNN-based CSI reporting.
  • the codebook-based CSI reporting includes codebook-based PMI.
  • the non-codebook-based CSI reporting includes non-codebook-based PMI.
  • the nonlinear-based CSI reporting includes nonlinear-based PMI.
  • the first CSI reporting configuration when the type of the first CSI reporting configuration belongs to the first type subset, the first CSI reporting configuration is not used to generate the first function; the first type subset includes: CSI reporting of the codebook.
  • the first type subset consists of codebook-based CSI reporting.
  • the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration when the type of the first CSI reporting configuration belongs to a second type subset, the first CSI reporting configuration is used to generate the first function; the second type subset includes non- At least one of linear CSI reporting, non-codebook-based CSI reporting, artificial intelligence or machine learning-based CSI reporting, neural network-based CSI reporting, compressed CSI reporting, or CNN-based CSI reporting.
  • the first CSI reporting configuration when the type of the first CSI reporting configuration does not belong to the second type subset, the first CSI reporting configuration is not used to generate the first function.
  • the third higher layer parameter indicates the codebook type of the first CSI reporting configuration.
  • the codebook type includes “type1” and “type2”.
  • the codebook type also includes at least one other type.
  • the codebook types include "typeI-SinglePanel", “typeI-MultiPanel”, “typeII”, “typeII-PortSelection”, “typeII-r16”, “typeII-PortSelection-r16” and “typeII- PortSelection-r17".
  • the codebook type also includes at least one other type.
  • the first CSI reporting configuration is not used to generate the first function.
  • the third type subset includes “type1” and “type2”.
  • the third type subset consists of "type1" and "type2".
  • the third type subset includes "typeI-SinglePanel", “typeI-MultiPanel”, “typeII”, “typeII-PortSelection”, “typeII-r16”, “typeII-PortSelection” -r16" and “typeII-PortSelection-r17".
  • the third type subset consists of "typeI-SinglePanel", “typeI-MultiPanel”, “typeII”, “typeII-PortSelection”, “typeII-r16”, “typeII-PortSelection” -r16" and "typeII-PortSelection-r17".
  • the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration is used to generate the first function.
  • the fourth type subset does not include “type1” and “type2”.
  • the fourth type subset does not include "typeI-SinglePanel", “typeI-MultiPanel”, “typeII”, “typeII-PortSelection”, “typeII-r16”, “typeII- PortSelection-r16” and “typeII-PortSelection-r17".
  • the first CSI reporting configuration is not used to generate the first function .
  • Embodiment 11 illustrates a schematic diagram of whether the first CSI reporting configuration includes a fourth higher layer parameter and is used to determine whether the first CSI reporting configuration is used to generate a first function according to an embodiment of the present application; as shown in Figure 11 Show.
  • whether the first CSI reporting configuration includes the fourth higher layer parameter is used by the first node to determine whether the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration when the first CSI reporting configuration includes the fourth higher layer parameter, the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration when the first CSI reporting configuration does not include the fourth higher layer parameter, the first CSI reporting configuration does not is used to generate the first function.
  • the first CSI reporting configuration when the first CSI reporting configuration does not include the fourth higher layer parameter, the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration when the first CSI reporting configuration includes the fourth higher layer parameter, the first CSI reporting configuration is not used to generate the first function.
  • the first CSI reporting configuration when the first CSI reporting configuration includes the fourth higher layer parameter, the first CSI reporting configuration is used to generate the first function; the fourth higher layer parameter indicates the first Index, the first index is associated with the first function.
  • the first index is used to identify the first function.
  • the first index is used to identify a third CSI reporting configuration
  • the first function is used to generate a CSI report for the third CSI reporting configuration
  • the first index is used to identify the second RS resource group, and the measurement for the second RS resource group is used to generate the input of the first function.
  • the first index is used to identify a second RS resource group, and the channel measurement obtained based on the second RS resource group is used to generate the input of the first function.
  • the first index is related to the range of wireless channels to which the first function is applicable.
  • the first index is used to indicate the range of wireless channels to which the first function is applicable.
  • the first index is related to the model of the first function.
  • the model of the first function includes: convolution kernel size, convolution layer number, convolution step size, pooling kernel size, pooling kernel step size, pooling function, activation function, or feature map One or more of the quantities.
  • the first function is constructed based on applying the target first type parameter set to a model of the first function.
  • the target first type parameter group includes: a convolution kernel, a pooling kernel, a pooling function, an activation function, parameters of a pooling function, or one of parameters of an activation function. or more.
  • the first CSI reporting configuration includes the fourth higher layer parameter
  • the first higher layer parameter, the second higher layer parameter and the fourth higher layer parameter are respectively determined by the third higher layer parameter.
  • a CSI reporting configuration is carried in different domains.
  • Embodiment 12 illustrates a schematic diagram illustrating the relationship between the number of first-type processing units occupied by the first CSI report and the first index when the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application; such as As shown in Figure 12.
  • the first index is a non-negative integer.
  • the first index includes a character string.
  • the meaning of the sentence that the first function is associated with the first index includes: the first index is used to identify the first function.
  • the meaning of the sentence that the first function is associated with the first index includes: the configuration information of the first function includes the first index.
  • the meaning of the sentence that the first function is associated with the first index includes: the first index is related to the range of wireless channels to which the first function is applicable.
  • the meaning of the sentence that the first function is associated with the first index includes: the first index is used to determine the range of wireless channels to which the first function is applicable.
  • the meaning of the sentence that the first function is associated with the first index includes: the first index is used to indicate the range of wireless channels to which the first function is applicable.
  • the meaning of the sentence that the first function is associated with the first index includes: the range of the wireless channel to which the first function is applicable is used to determine the first index.
  • the first index is used by the first node to determine a range of wireless channels to which the first function is applicable.
  • the range of wireless channels to which the first function is applicable is used by the second node to determine the first index.
  • the first index is indicated by the second node to the first node.
  • the first index is indicated by the first node to the second node.
  • the range of the wireless channel includes one or more of Dense Urban, Urban Macro, Urban Micro, or rural macro.
  • the range of the wireless channel includes at least one of a carrier frequency, a carrier frequency range or a frequency range.
  • the range of the wireless channel includes the bandwidth range of the wireless channel, the range of the number of included sub-bands, the range of the number of transmitting ports, the range of the number of receiving ports, the range of the number of multipaths, the range of the delay
  • the range of wireless channels to which the first function is applicable includes the bandwidth range of the frequency domain resources for which the input of the first function is directed, and the subbands included in the frequency domain resources for which the input of the first function is directed are The range of the number, the range of the number of multipaths corresponding to the input of the first function, the range of the number of sending ports corresponding to the input of the first function, the range of the number of receiving ports corresponding to the input of the first function, so One or more of the range of the number of feature vectors per subband included in the input of the first function, or the range of the number of layers corresponding to the input of the first function.
  • the range of wireless channels to which the first function is applicable includes the bandwidth range of the frequency domain resources for which the output of the first function is directed, and the subbands included in the frequency domain resources for which the output of the first function is directed are One or more of the range of quantities, or the range of the number of layers corresponding to the output of the first function.
  • the first index is used to determine the number of the first type of processing units occupied by the first CSI report.
  • the meaning of the sentence that the number of the first type of processing units occupied by the first CSI report is related to the first index includes: the first type of processing occupied by the first CSI report
  • the number of units is related to the range of wireless channels to which the first function is applicable.
  • the meaning of the sentence that the number of the first type of processing units occupied by the first CSI report is related to the first index includes: the range of wireless channels to which the first function is applicable is used Determining the number of the first type of processing units occupied by the first CSI report.
  • the meaning of the sentence that the number of the first type of processing units occupied by the first CSI report is related to the first index includes: the first function corresponds to a target integer, and the target integer is a non-negative integer; the number of the first type of processing units occupied by the first CSI report is equal to the target integer.
  • the target integer is configurable.
  • higher layer signaling is used to configure the target integer.
  • the configuration information of the first function includes the target integer.
  • the first function is one of N functions, N indexes are respectively associated with the N functions, and the first index is one of the N indexes associated with the first function.
  • the index of the connection; the N functions respectively correspond to N integers, and the N integers are respectively N non-negative integers; the number of the first type of processing units occupied by the first CSI report is equal to the The integer corresponding to the first function among the N integers.
  • two of the N functions have different applicable wireless channel ranges.
  • any two of the N functions are applicable to different wireless channel ranges.
  • the N indexes are different from each other.
  • the first CSI reporting configuration includes the first index.
  • a second information block is used to indicate the model of the first function, and the second information block indicates the first index.
  • the second information block indicates the target integer.
  • the sender of the second information block is the first node
  • the target recipient of the second information block includes the second node
  • the sender of the second information block is the second node
  • the target recipient of the second information block includes the first node
  • the number of the first type of processing units occupied by the first CSI report in the sentence is related to the first index.
  • the first rank threshold is related to the first function
  • the number of the first type of processing units occupied by the first CSI report is related to the first rank threshold.
  • the first rank threshold is the maximum value of the number of layers corresponding to the input of the first function.
  • the first rank threshold is related to the range of wireless channels to which the first function is applicable.
  • the first rank threshold is associated with characteristics of the wireless channel, so the range of the wireless channel to which the first function is applicable may be indicated by the first rank threshold.
  • the first rank threshold is used to determine the number of the first type of processing units occupied by the first CSI report.
  • the number of the first type of processing units occupied by the first CSI report changes with the first rank threshold.
  • the first rank threshold when the first rank threshold is equal to A1, the number of the first type of processing units occupied by the first CSI report is equal to B1; when the first rank threshold is equal to A2 , the number of the first type of processing units occupied by the first CSI report is equal to B2; the A1 is greater than the A2, and the B1 is not less than the B2.
  • the first rank threshold is configurable.
  • the first rank threshold is configured for the first function.
  • the first rank threshold does not need to be configured.
  • the rank number refers to: rank.
  • the rank number refers to: number of layers.
  • the rank number refers to the number of MIMO (Multiple Input Multiple Output) layers.
  • the meaning of the sentence that the number of the first type of processing units occupied by the first CSI report is related to the first index includes: the first bandwidth threshold is related to the first function, and the The number of the first type of processing units occupied by the first CSI report is related to the first bandwidth threshold.
  • the first bandwidth threshold is the maximum bandwidth value of the frequency domain resource for which the input of the first function is directed.
  • the first bandwidth threshold is expressed as the number of subbands.
  • the first bandwidth threshold is expressed as the number of RB (Resource Block).
  • the unit of the first bandwidth threshold is MHz (megahertz) or KHz (kilohertz).
  • the first bandwidth threshold is related to a range of wireless channels to which the first function is applicable.
  • the first bandwidth threshold is associated with characteristics of a wireless channel, so the range of the wireless channel to which the first function is applicable may be indicated by the first bandwidth threshold.
  • the first bandwidth threshold is used to determine the number of the first type of processing units occupied by the first CSI report.
  • the number of the first type of processing units occupied by the first CSI report changes with the first bandwidth threshold.
  • the number of the first type of processing units occupied by the first CSI report is equal to B1; when the first bandwidth threshold is equal to A2, the number of processing units of the first type occupied by the first CSI report is equal to A2.
  • the number of the first type of processing units occupied by the first CSI report is equal to B2; the A1 is greater than the A2, and the B1 is not less than the B2.
  • the first bandwidth threshold is configurable.
  • the first bandwidth threshold is configured for the first function.
  • the first bandwidth threshold does not need to be configured.
  • the meaning of the sentence that the number of the first type of processing units occupied by the first CSI report is related to the first index includes: the first port number threshold is related to the first function, so The number of the first type of processing units occupied by the first CSI report is related to the first port number threshold.
  • the first port number threshold is the maximum value of the sending port corresponding to the input of the first function.
  • the first port number threshold is the maximum value of the receiving port corresponding to the input of the first function.
  • the first port number threshold is related to the range of wireless channels to which the first function is applicable.
  • the first port number threshold is associated with the characteristics of the wireless channel, so the range of the wireless channel to which the first function is applicable may be indicated by the first port number threshold.
  • the first port number threshold is used to determine all of the first type of processing units occupied by the first CSI report. stated quantity.
  • the number of the first type of processing units occupied by the first CSI report changes with the first port number threshold.
  • the first port number threshold when the first port number threshold is equal to A1, the number of the first type of processing units occupied by the first CSI report is equal to B1; when the first port number threshold is equal to A2 , the number of the first type of processing units occupied by the first CSI report is equal to B2; the A1 is greater than the A2, and the B1 is not less than the B2.
  • the first port number threshold is configurable.
  • the first port number threshold is configured for the first function.
  • the first port number threshold does not need to be configured.
  • the port includes: RS port.
  • the port includes: an antenna port.
  • Embodiment 13 illustrates a schematic diagram of the first function, the first compressed CSI and the first pre-compressed CSI according to an embodiment of the present application, as shown in FIG. 13 .
  • the first pre-compressed CSI is used by the first node as an input of the first function to generate the first compressed CSI.
  • the first compressed CSI is based on non-codebook.
  • the first compressed CSI is generated based on artificial intelligence or machine learning.
  • the first compressed CSI is generated based on a neural network.
  • the first compressed CSI is generated based on CNN.
  • the CSI recovered by the target receiver of the first compressed CSI based on the first compressed CSI is unavailable to the first node.
  • the first compressed CSI is used for precoding, and the first compressed CSI does not include a codeword index.
  • the first compressed CSI includes multiple bits.
  • the first compressed CSI includes at least one matrix.
  • the elements of any matrix in the at least one matrix are complex numbers.
  • elements of any matrix in the at least one matrix are real numbers.
  • the first compressed CSI includes PMI.
  • the first compressed CSI includes compressed PMI.
  • the first compressed CSI includes at least one of CQI or RI.
  • the first compressed CSI includes one or more of CQI, CRI or RI.
  • the first compressed CSI includes at least one channel matrix.
  • the first compressed CSI includes information of at least one channel matrix.
  • the first compressed CSI includes at least one compressed channel matrix.
  • the first compressed CSI includes at least one feature vector.
  • the first compressed CSI includes information of at least one feature vector.
  • the first compressed CSI includes at least one compressed feature vector.
  • the first pre-compression CSI includes PMI.
  • the first pre-compression CSI includes one or more of CQI, CRI or RI.
  • the first pre-compression CSI includes at least one channel matrix.
  • the first pre-compression CSI includes information of at least one channel matrix.
  • the first pre-compression CSI includes at least one feature vector.
  • the first pre-compression CSI includes information of at least one feature vector.
  • the first pre-compression CSI is obtained by preprocessing at least one channel matrix.
  • the preprocessing includes DFT (Discrete Fourier Transform).
  • the preprocessing includes quantization, transformation from spatial domain to angle domain, transformation from frequency domain to time domain, transformation from time domain to frequency domain. One or more of replacement or truncation.
  • the first pre-compressed CSI includes a first matrix
  • the first compressed CSI includes a second matrix
  • the number of elements in the second matrix is smaller than the number of elements in the first matrix
  • the first pre-compression CSI is represented by Q1 bits
  • the first compressed CSI is represented by Q2 bits
  • Q1 and Q2 are respectively positive integers greater than 1
  • the Q1 is greater than the Q2.
  • the first function is used to generate any CSI report configured for the second CSI report.
  • the first function is used to generate compressed CSI included in any CSI report configured for the second CSI report.
  • the first CSI reporting configuration set includes multiple CSI reporting configurations, and the first function is used to generate any CSI report for any CSI reporting configuration in the first CSI reporting configuration set.
  • the first CSI reporting configuration set includes multiple CSI reporting configurations, and the first function is used to generate any CSI report for any CSI reporting configuration in the first CSI reporting configuration set. Compressed CSI included.
  • Embodiment 14 illustrates a schematic diagram of the second function according to an embodiment of the present application; as shown in Figure 14.
  • the first compressed CSI is used as an input of the second function to generate the first CSI.
  • the first compressed CSI is used by the second node as an input of the second function to generate the first CSI.
  • the first compressed CSI is used by the first node as an input of the second function to generate the first CSI.
  • the first CSI includes PMI.
  • the first CSI includes one or more of CQI, CRI or RI.
  • the first CSI includes at least one channel matrix.
  • the first CSI includes information of at least one channel matrix.
  • the first CSI includes at least one feature vector.
  • the first CSI includes information of at least one feature vector.
  • the second function is non-linear.
  • the second function is non-codebook.
  • the input of the second function includes compressed CSI.
  • the output of the second function includes restored CSI before compression.
  • the second function is based on artificial intelligence or machine learning.
  • the second function is based on a neural network (Neural Network).
  • the second function includes a neural network for CSI compression.
  • the second function includes a decoder of a neural network for CSI compression.
  • the second function includes a CNN-based decoder for CSI compression.
  • a decoder based on CsiNet or CRNet is used to implement the second function.
  • the second function is obtained through training.
  • the second function includes a K2 sub-function, and K2 is a positive integer greater than 1.
  • the K2 sub-function includes one or more of a convolution function, a pooling function, a cascade function or an activation function.
  • one of the K2 sub-functions includes a preprocessing layer.
  • the pre-processing layer includes a fully connected layer.
  • the preprocessing layer expands the size of the input of the second function.
  • one of the K2 sub-functions includes a pooling layer.
  • At least one sub-function among the K2 sub-functions includes at least one convolution layer.
  • At least one sub-function among the K2 sub-functions includes at least one decoding layer.
  • the one decoding layer includes at least one convolutional layer.
  • the one decoding layer includes at least one convolution layer and one pooling layer.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting configuration is used to generate the second function.
  • the first CSI reporting configuration is not used to generate the second function.
  • Embodiment 15 illustrates a schematic diagram of the relationship between the first pre-compression CSI, the first compressed CSI, the first function and the second function according to an embodiment of the present application; as shown in FIG. 15 .
  • the first pre-compressed CSI is used by the first node to generate the first compressed CSI as an input of the first function
  • the first compressed CSI is used as an input of the second function.
  • the input is used by the second node to generate the first CSI.
  • the first CSI includes a restored value of the first pre-compression CSI.
  • the first CSI includes an estimated value of the first pre-compression CSI.
  • the first CSI includes all or part of the information of the first pre-compression CSI.
  • the first compressed CSI is sent by the first node and received by the second node through an air interface.
  • the first compressed CSI is quantized and sent by the first node, and is received by the second node through an air interface.
  • the first function is used to compress the first pre-compression CSI to reduce the air interface overhead of the first compressed CSI
  • the second function is used to compress the first compressed CSI. Decompression is performed to recover as much as possible the first pre-compression CSI.
  • the first node obtains a first channel matrix based on measurements of RSs received in the second RS resource group; the first channel matrix is used to generate the first pre-compression CSI.
  • any element in the first channel matrix includes information about the channel experienced by the RS transmitted on one RS port in the second RS resource group on one frequency unit.
  • the frequency unit is a sub-band.
  • the frequency unit is an RB.
  • the frequency unit is composed of multiple consecutive RBs.
  • the first pre-compression CSI includes the first channel matrix.
  • the first pre-compression CSI includes at least one feature vector of the first channel matrix.
  • the first pre-compression CSI is obtained after preprocessing of the first channel matrix.
  • the first CSI includes an estimated value of the first channel matrix.
  • the first CSI includes an estimated value of at least one eigenvector of the first channel matrix.
  • the second function is the inverse function of the first function.
  • the first function is established on the first node
  • the second function is established on the second node
  • the first function is established on the first node and the second node at the same time, and the second function is established on the second node.
  • the first function is established on the first node
  • the second function is established on the first node and the second node at the same time.
  • the first function and the second function are both established on the first node and the second node at the same time.
  • Embodiment 16 illustrates that according to an embodiment of the present application, when the first CSI reporting configuration is not used to generate the first function, the first type of processing unit is a second type of processing unit; when the first CSI reporting configuration is used to generate the first function When generating the first function, the first type of processing unit is a schematic diagram of the third type of processing unit; as shown in Figure 16.
  • the second type of processing unit includes a CSI processing unit.
  • the second type of processing unit is a CSI processing unit.
  • the third type of processing unit includes a CSI processing unit.
  • the third type of processing unit is another type of processing unit different from the CSI processing unit.
  • the third type of processing unit is a general processing unit.
  • the second type of processing unit is a CSI processing unit
  • the third type of processing unit is another type of processing unit different from the CSI processing unit.
  • the second type of processing unit is used to process the first type of CSI report
  • the third type of processing unit is used to process the second type of CSI report.
  • the first CSI reporting when the first CSI reporting configuration is not used to generate the first function, the first CSI reporting is a CSI report of the first type; when the first CSI reporting configuration is When used to generate the first function, the first CSI report is one of the second type CSI reports.
  • one of the first type CSI reports does not indicate compressed CSI and is not used to generate the first type function.
  • a second type of CSI report is used to generate a first type of function.
  • a second type CSI report includes a compressed CSI or is used to generate a first type function.
  • the first function is a function of the first type.
  • an output of the first type function includes compressed CSI.
  • a function of the first type is non-codebook.
  • a function of the first type is based on artificial intelligence or machine learning.
  • a function of the first type is based on a neural network (Neural Network).
  • one of said first type functions includes an encoder of a neural network for CSI compression.
  • a function of the first type is obtained through training.
  • the second type of processing unit and the third type of processing unit have different computing capabilities.
  • the second type of processing unit and the third type of processing unit have different processing capabilities.
  • Embodiment 17 illustrates a schematic diagram in which the first CSI report occupies the fourth type of processing unit starting from the second symbol when the first CSI reporting configuration is used to generate the first function according to an embodiment of the present application; as shown in Figure 17 shown.
  • the second symbol is an OFDM symbol.
  • the second symbol is the first symbol.
  • the second symbol and the first symbol are the same OFDM symbol.
  • the second symbol and the first symbol are two different OFDM symbols.
  • the second symbol is earlier than the first symbol in the time domain.
  • the second symbol is later than the first symbol in the time domain.
  • the first symbol and the second symbol correspond to the same subcarrier spacing.
  • the first CSI reporting configuration when the first CSI reporting configuration is not used to generate the first function, the first CSI reporting does not occupy the fourth type of processing unit.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting does not occupy the fourth type of processing unit before the second symbol.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting occupies neither the first type of processing unit nor the first type of processing unit before the second symbol.
  • the fourth type of processing unit when the first CSI reporting configuration is used to generate the first function, the first CSI reporting occupies neither the first type of processing unit nor the first type of processing unit before the second symbol.
  • the fourth type of processing unit when the first CSI reporting configuration is used to generate the first function, the first CSI reporting occupies neither the first type of processing unit nor the first type of processing unit before the second symbol.
  • the second symbol is the first symbol.
  • the second symbol is earlier than the first symbol in the time domain.
  • the fourth type of processing unit includes a CSI processing unit.
  • the fourth type of processing unit is a CSI processing unit.
  • the fourth type of processing unit includes a general processing unit.
  • the fourth type of processing unit is another type of processing unit different from the CSI processing unit.
  • the fourth type of processing unit is the second type of processing unit.
  • the first type of processing unit is a CSI processing unit
  • the fourth type of processing unit is another type of processing unit different from the CSI processing unit.
  • the first type of processing unit is used to process the first type of CSI report and the second type of CSI report; the fourth type of processing unit is used to process the first type of CSI report and the second type of CSI report. Only the second type CSI report is reported in the second type CSI report.
  • the fourth type of processing unit is a CSI processing unit; when the first CSI reporting configuration is used to generate the first function, the first type of processing unit is different from the CSI processing unit Another type of processing unit.
  • the fourth type of processing unit is used to process the first type of CSI reporting and the second type of CSI reporting; when the first type of CSI reporting configuration is used to generate the first function, the One type of processing unit is used to process only the second type of CSI report among the first type of CSI report and the second type of CSI report.
  • the first CSI reporting when the first CSI reporting configuration is not used to generate the first function, the first CSI reporting is a CSI report of the first type; when the first CSI reporting configuration is When used to generate the first function, the first CSI report is one of the second type CSI reports.
  • one of the first type CSI reports does not indicate compressed CSI and is not used to generate the first type function.
  • a second type of CSI report is used to generate a first type of function.
  • a second type CSI report includes a compressed CSI or is used to generate a first type function.
  • the first type of processing unit and the fourth type of processing unit have different computing capabilities.
  • the first type of processing unit and the fourth type of processing unit have different processing capabilities.
  • the number of the fourth type of processing units occupied by the first CSI report is a positive integer.
  • the number of the fourth type of processing units occupied by the first CSI report has nothing to do with the number of the first type of processing units occupied by the first CSI report.
  • the number of the fourth type of processing units occupied by the first CSI report and the number of the first type of processing units occupied by the first CSI report are determined respectively.
  • the number of the fourth type of processing units occupied by the first CSI report is related to the number of RS resources included in the first RS resource group.
  • the number of the fourth type of processing units occupied by the first CSI report changes with the number of RS resources included in the first RS resource group.
  • the number of RS resources included in the first RS resource group is used to determine the number of the fourth type of processing units occupied by the first CSI report.
  • the number of the fourth type of processing units occupied by the first CSI report is related to the maximum number of RS ports of the RS resources in the first RS resource group.
  • the number of the fourth type of processing units occupied by the first CSI report changes with the maximum number of RS ports of the RS resources in the first RS resource group.
  • the maximum value of the number of RS ports of the RS resources in the first RS resource group is used to determine the number of the fourth type of processing units occupied by the first CSI report.
  • the number of the fourth type of processing units occupied by the first CSI report is related to the bandwidth of the frequency domain resources occupied by the first RS resource group.
  • the number of the fourth type of processing units occupied by the first CSI report changes with the bandwidth of the frequency domain resources occupied by the first RS resource group.
  • the bandwidth of the frequency domain resources occupied by the first RS resource group is used to determine the number of the fourth type of processing units occupied by the first CSI report.
  • Embodiment 18 illustrates a structural block diagram of a processing device used in a first node device according to an embodiment of the present application; as shown in FIG. 18 .
  • the processing device 1800 in the first node device includes a first receiver 1801 and a first processor 1802.
  • the first receiver 1801 receives the first CSI reporting configuration, and the first CSI reporting configuration is used to determine the first CSI reporting; the first processor 1802 updates the first CSI reporting.
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter; the first higher layer parameter is set to a first parameter value, and the first parameter value belongs to the first a subset of candidate parameter values; the second higher level parameter is used to determine the first RS resource group, the first RS resource group is used for channel measurement; the first CSI report does not occupy the first type of processing unit before the first symbol; the first type of processing occupied by the first CSI report The number of units is related to whether the first CSI reporting configuration is used to generate the first function.
  • the first CSI reporting configuration includes a third higher layer parameter, and the third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • whether the first CSI reporting configuration includes a fourth higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • the number of the first type of processing units occupied by the first CSI reporting is related to the first index, so The first index is associated with the first function.
  • the first receiver 1801 receives a first CSI report configuration set; the first processor 1802 sends a second CSI report, the second CSI report includes the first compressed CSI; wherein, the first compressed CSI A CSI reporting configuration set includes a second CSI reporting configuration, the second CSI reporting configuration is used to determine the second CSI reporting; the first pre-compression CSI is used as an input of the first function to generate the first A compressed CSI.
  • the first type of processing unit when the first CSI reporting configuration is not used to generate the first function, the first type of processing unit is a second type of processing unit; when the first CSI reporting configuration is used to When generating the first function, the first type of processing unit is a third type of processing unit.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting occupies a fourth type of processing unit starting from the second symbol.
  • the first node device is user equipment.
  • the first node device is a relay node device.
  • the first receiver 1801 receives RS in the first RS resource group.
  • the first receiver 1801 receives RS in the second RS resource group in Embodiment 5.
  • the first node when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the first node does not configure the first CSI reporting Report any CSI reporting amount; the CSI reporting amount includes compressed CSI, CQI, PMI, CRI, LI, RI, SSBRI, L1-RSRP and L1-SINR.
  • the first node when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the first node does not configure the first CSI reporting Report any first-type CSI reporting amount; the first-type CSI reporting amount includes compressed CSI, CQI, PMI, CRI, LI, RI, SSBRI, L1-RSRP and L1-SINR.
  • the first symbol is an OFDM symbol; the first node obtains channel measurements for updating the first CSI report based on the first RS resource group; the first RS resource group includes At least one RS resource; any RS resource in the first RS resource group is a CSI-RS resource or SS/PBCH block resource; the output of the first function includes compressed CSI, or, the first function It is based on artificial intelligence or machine learning.
  • the behavior of updating the first CSI reporting is used for at least one of the following: training the first function, Channel measurements are obtained for obtaining data required to train the first function.
  • the first receiver 1801 includes the ⁇ antenna 452, receiver 454, receiving processor 456, multi-antenna receiving processor 458, controller/processor 459, memory 460, and data source in Embodiment 4. At least one of 467 ⁇ .
  • the first processor 1802 includes ⁇ antenna 452, receiver/transmitter 454, receiving processor 456, transmitting processor 468, multi-antenna receiving processor 458, multi-antenna transmitting processing in Embodiment 4 At least one of the processor 457, the controller/processor 459, the memory 460, and the data source 467 ⁇ .
  • Embodiment 19 illustrates a structural block diagram of a processing device used in a second node device according to an embodiment of the present application; as shown in FIG. 19 .
  • the processing device 1900 in the second node device includes a first transmitter 1901 and a second receiver 1902, where the second receiver 1902 is optional.
  • the first transmitter 1901 sends the first CSI reporting configuration.
  • the first CSI reporting configuration is used to determine the first CSI reporting;
  • the first CSI reporting configuration includes a first higher layer parameter and a second higher layer parameter;
  • the first higher layer parameter is Set to a first parameter value that belongs to a first subset of candidate parameter values;
  • the second higher layer parameter is used to determine a first RS resource group, and the first RS resource group is used for a channel Measurement;
  • the target receiver of the first CSI report configuration updates the first CSI report;
  • the first CSI report does not occupy the first type of processing unit before the first symbol;
  • the first CSI reporting configuration includes a third higher layer parameter, and the third higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • whether the first CSI reporting configuration includes a fourth higher layer parameter is used to determine whether the first CSI reporting configuration is used to generate the first function.
  • the number of the first type of processing units occupied by the first CSI reporting is related to the first index, so The first index is associated with the first function.
  • the processing device 1900 in the second node device includes a second receiver 1902; wherein the first transmitter 1901 sends a first CSI reporting configuration set; the second receiver 1902 receives a second CSI reporting, the second CSI reporting includes first compressed CSI; the first CSI reporting configuration set includes a second CSI reporting configuration, and the second CSI reporting configuration is used to determine the second CSI reporting; first Pre-compressed CSI is used as input to the first function to generate the first compressed CSI.
  • the first type of processing unit when the first CSI reporting configuration is not used to generate the first function, the first type of processing unit is a second type of processing unit; when the first CSI reporting configuration is used to When generating the first function, the first type of processing unit is a third type of processing unit.
  • the first CSI reporting configuration when used to generate the first function, the first CSI reporting occupies a fourth type of processing unit starting from the second symbol.
  • the equipment in the second node is a base station equipment.
  • the device in the second node is user equipment.
  • the device in the second node is a relay node device.
  • the first transmitter 1901 sends RS in the first RS resource group.
  • the first transmitter 1901 sends RS in the second RS resource group in Embodiment 5.
  • the target recipient of the first CSI reporting configuration when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the target recipient of the first CSI reporting configuration is not aware of it.
  • the first CSI reporting configuration reports any CSI reporting amount; the CSI reporting amount includes compressed CSI, CQI, PMI, CRI, LI, RI, SSBRI, L1-RSRP and L1-SINR.
  • the target recipient of the first CSI reporting configuration when the value of the first higher layer parameter is set to any candidate parameter value in the first candidate parameter value subset, the target recipient of the first CSI reporting configuration is not aware of it.
  • the first CSI reporting configuration reports any first type of CSI reporting amount; the first type of CSI reporting amount includes compressed CSI, CQI, PMI, CRI, LI, RI, SSBRI, L1-RSRP and L1-SINR.
  • the first symbol is an OFDM symbol; the target receiver of the first CSI report configuration obtains channel measurements for updating the first CSI report based on the first RS resource group;
  • the first RS resource group includes at least one RS resource; any RS resource in the first RS resource group is a CSI-RS resource or SS/PBCH block resource; the output of the first function includes compressed CSI, or , the first function is based on artificial intelligence or machine learning.
  • the behavior of updating the first CSI reporting is used for at least one of the following: training the first function, Channel measurements are obtained for obtaining data required to train the first function.
  • the first transmitter 1901 includes ⁇ antenna 420, transmitter 418, transmission processor 416, multi-antenna transmission processor 471, controller/processor 475, memory 476 ⁇ in Embodiment 4. At least one.
  • the second receiver 1902 includes ⁇ antenna 420, receiver 418, receiving processor 470, multi-antenna receiving processor 472, controller/processor 475, memory 476 ⁇ in Embodiment 4. At least one.
  • User equipment, terminals and UEs in this application include but are not limited to drones, communication modules on drones, remote control aircraft, aircraft, small aircraft, mobile phones, tablets, notebooks, vehicle-mounted communication equipment, vehicles, vehicles, RSU, wireless sensor, network card, Internet of Things terminal, RFID terminal, NB-IOT terminal, MTC (Machine Type Communication, machine type communication) terminal, eMTC (enhanced MTC, enhanced MTC) terminal, data card, network card, vehicle Communication equipment, low-cost mobile phones, low-cost tablet computers and other wireless communication equipment.
  • MTC Machine Type Communication, machine type communication
  • eMTC enhanced MTC
  • the base station or system equipment in this application includes but is not limited to macro cell base station, micro cell base station, small cell base station, home base station, relay base station, eNB, gNB, TRP (Transmitter Receiver Point, sending and receiving node), GNSS, relay Satellites, satellite base stations, air base stations, RSU (Road Side Unit), drones, test equipment, such as wireless communication equipment such as transceivers or signaling testers that simulate some functions of the base station.

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Abstract

La présente demande divulgue un procédé et un appareil utilisés dans un nœud de communication sans fil. Un premier nœud reçoit une première configuration de rapport CSI et met à jour un premier rapport CSI ; la première configuration de rapport CSI est utilisée pour déterminer le premier rapport CSI ; la première configuration de rapport CSI comprend un premier paramètre de couche supérieure et un second paramètre de couche supérieure ; le premier paramètre de couche supérieure est défini en tant que première valeur de paramètre, la première valeur de paramètre appartenant à un premier sous-ensemble de valeurs de paramètre candidates ; le second paramètre de couche supérieure est utilisé pour déterminer un premier groupe de ressources RS, le premier groupe de ressources RS étant utilisé pour une mesure de canal ; le premier rapport CSI n'utilise pas une unité de traitement de type un avant un premier symbole ; et le nombre d'unités de traitement de type un utilisées par le premier rapport CSI est associé au fait que la première configuration de rapport CSI est utilisée ou non pour générer une première fonction. Le procédé décrit satisfait à une exigence qu'une capacité de traitement CSI soit satisfaite tout en empêchant un gaspillage de capacité de traitement, et une conception de système est optimisée.
PCT/CN2023/105675 2022-07-08 2023-07-04 Procédé et appareil utilisés dans un nœud de communication sans fil WO2024008065A1 (fr)

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